Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier

Biologically active polymer core/shell nanoparticles (i.e. micelles) self-assembled from TAT-poly(ethylene glycol) (PEG)-b-cholesterol (TAT-PEG-b-Chol) were fabricated and used as carrier for targeted blood-brain barrier delivery of antibiotics. Ciprofloxacin as a model antibiotic was efficiently lo...

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Main Authors: Liu, Lihong, Guo, K., Lu, J., Venkatraman, S., Luo, D., Ng, K., Ling, E., Moochhala, S., Yang, Y.
Format: Journal Article
Published: Elsevier Ltd 2008
Online Access:http://hdl.handle.net/20.500.11937/20181
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author Liu, Lihong
Guo, K.
Lu, J.
Venkatraman, S.
Luo, D.
Ng, K.
Ling, E.
Moochhala, S.
Yang, Y.
author_facet Liu, Lihong
Guo, K.
Lu, J.
Venkatraman, S.
Luo, D.
Ng, K.
Ling, E.
Moochhala, S.
Yang, Y.
author_sort Liu, Lihong
building Curtin Institutional Repository
collection Online Access
description Biologically active polymer core/shell nanoparticles (i.e. micelles) self-assembled from TAT-poly(ethylene glycol) (PEG)-b-cholesterol (TAT-PEG-b-Chol) were fabricated and used as carrier for targeted blood-brain barrier delivery of antibiotics. Ciprofloxacin as a model antibiotic was efficiently loaded into the nanoparticles by a membrane dialysis method. The actual loading level of ciprofloxacin was dependent on initial loading of ciprofloxacin and fabrication temperature. The blank and ciprofloxacin-loaded nanoparticles were characterized using dynamic light scattering and SEM. The nanoparticles were spherical in nature, having an average size lower than 200 nm. The uptake of nanoparticles with TAT by human brain endothelial cells was greater than that of the nanoparticles without TAT. Most importantly, the nanoparticles with TAT were able to cross the blood-brain barrier (BBB), and located around the cell nucleus of neurons. These nanoparticles may provide a promising carrier to deliver antibiotics across the BBB for the treatment of brain infection. © 2007 Elsevier Ltd. All rights reserved.
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publishDate 2008
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spelling curtin-20.500.11937-201812017-09-13T13:48:13Z Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier Liu, Lihong Guo, K. Lu, J. Venkatraman, S. Luo, D. Ng, K. Ling, E. Moochhala, S. Yang, Y. Biologically active polymer core/shell nanoparticles (i.e. micelles) self-assembled from TAT-poly(ethylene glycol) (PEG)-b-cholesterol (TAT-PEG-b-Chol) were fabricated and used as carrier for targeted blood-brain barrier delivery of antibiotics. Ciprofloxacin as a model antibiotic was efficiently loaded into the nanoparticles by a membrane dialysis method. The actual loading level of ciprofloxacin was dependent on initial loading of ciprofloxacin and fabrication temperature. The blank and ciprofloxacin-loaded nanoparticles were characterized using dynamic light scattering and SEM. The nanoparticles were spherical in nature, having an average size lower than 200 nm. The uptake of nanoparticles with TAT by human brain endothelial cells was greater than that of the nanoparticles without TAT. Most importantly, the nanoparticles with TAT were able to cross the blood-brain barrier (BBB), and located around the cell nucleus of neurons. These nanoparticles may provide a promising carrier to deliver antibiotics across the BBB for the treatment of brain infection. © 2007 Elsevier Ltd. All rights reserved. 2008 Journal Article http://hdl.handle.net/20.500.11937/20181 10.1016/j.biomaterials.2007.11.014 Elsevier Ltd restricted
spellingShingle Liu, Lihong
Guo, K.
Lu, J.
Venkatraman, S.
Luo, D.
Ng, K.
Ling, E.
Moochhala, S.
Yang, Y.
Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title_full Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title_fullStr Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title_full_unstemmed Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title_short Biologically active core/shell nanoparticles self-assembled from cholesterol-terminated PEG-TAT for drug delivery across the blood-brain barrier
title_sort biologically active core/shell nanoparticles self-assembled from cholesterol-terminated peg-tat for drug delivery across the blood-brain barrier
url http://hdl.handle.net/20.500.11937/20181